Displaying 11 results from an estimated 11 matches for "metagener".
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2009 Feb 13
2
Meta-Analyisis on Correlations
Dear R-Community,
I'm currently trying to find a way to conduct a meta-analysis in R.
I would like to analyze data from mostly-cross-sectional survey-studies. The
effect sizes would be correlations.
The R packages "meta" and "rmeta" are, as far as I can see, set up for
analysis with effect sizes for differences (i.e. comparison of the
means/odds-ratios of experimental
2010 Aug 24
2
forest plot
Dear Sir or Madam,
I am trying to plot forest plot. I extracted odds ratio and their corresponding 95% confidence interval from papers, then I calculated the log(OR) and standard error using the following command
OR<-metagen(logOR,selogOR,sm="OR")
forest(OR,comb.fixed=TRUE,comb.random=TRUE,digits=2)
However, it does not produce a forest plot. Can someone kindly help? Thank
2012 Mar 28
0
Major update: meta version 2.0-0
Version 2.0-0 of meta (an R package for meta-analysis) is now available
on CRAN. Changes are described below.
Yours,
Guido
Major revision
R package meta linked to R package metafor by Wolfgang Viechtbauer to
provide additional statistical methods, e.g. meta-regression and other
estimates for tau-squared (REML, ...)
New functions:
- metareg (meta-regression)
- metabias
2012 Mar 28
0
Major update: meta version 2.0-0
Version 2.0-0 of meta (an R package for meta-analysis) is now available
on CRAN. Changes are described below.
Yours,
Guido
Major revision
R package meta linked to R package metafor by Wolfgang Viechtbauer to
provide additional statistical methods, e.g. meta-regression and other
estimates for tau-squared (REML, ...)
New functions:
- metareg (meta-regression)
- metabias
2006 Nov 16
3
Newbie problem ... Forest plot
Hello!
I have some data stored into 2 separate csv file. 1 file (called A.csv) (12 results named Group1, Group2, Group3, etc...) odds ratios, 2 file (called B.csv) 12 corresponded errors.
How to import that data into R and make forest plot like I saw inside help file Rmeta and meta with included different font colors and names trough X and Y axis.
I know for meta libb
...
out <-
2002 Jun 05
1
[Re: Re: Scaling on a data.frame]
Stefan Roepcke <stefan.roepcke at metagen.de> writes:
> Hey,
>
> hopefully there is an easy way to solve my problem.
> All that i think off is lengthy and clumsy.
>
> Given a data.frame d with columns VALUE, FAC1, FAC2, FAC3.
> Let FAC1 be something like experiment number,
> so that there are exactly the same number of rows for each level of FAC1
> in the
2009 Jun 04
4
Cochran’s Q statistic
Does anyone know which package include the computation of Cochran’s Q
statistic in R?
jlfmssm
[[alternative HTML version deleted]]
2003 Apr 01
1
computation with vectors of length 0 (PR#2716)
Full_Name: Klaus Hermann
Version: 1.5.0
OS: SUNRAY - Unix
Submission from: (NULL) (213.61.59.254)
if we produce a numeric vector of length 0 and want compute the sum over its
elements
the sum function returns 0 - this is obviously misleading. Better would be to
return
NA and give a corresponding warning.
There should be a unified strategy to handle vectors of length 0.
For example the functions
2002 Jun 04
2
Scaling on a data.frame
Hey,
hopefully there is an easy way to solve my problem.
All that i think off is lengthy and clumsy.
Given a data.frame d with columns VALUE, FAC1, FAC2, FAC3.
Let FAC1 be something like experiment number,
so that there are exactly the same number of rows for each level of FAC1
in the data.frame.
Now i would like to scale all values according to the center of its
experiment.
So i can apply s
2010 Jul 18
6
CRAN (and crantastic) updates this week
CRAN (and crantastic) updates this week
New packages
------------
* allan (1.0)
Alan Lee
http://crantastic.org/packages/allan
Automates Large Linear Analysis Model Fitting
* andrews (1.0)
Jaroslav Myslivec
http://crantastic.org/packages/andrews
Andrews curves for visualization of multidimensional data
* anesrake (0.3)
Josh Pasek
http://crantastic.org/packages/anesrake
This
2010 Aug 24
0
mlm for within subject design
Thank you for reading. I am trying to get sphericity values, and I understood I need to use mlm, but how do I implement a nested within subject design in mlm? I already read the R newsletter, fox chapter appendix, EZanova, and whatever I could find online.
My original ANOVA
anova(aov(resp ~ sucrose*citral, random =~1 | subject, data = p12bl, subset = exps==1))
Or
anova(aov(resp ~